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A dedicated circuit linking direction selective retinal ganglion cells to primary visual cortex

机译:专用电路将方向选择性视网膜神经节细胞连接至初级视觉皮层

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摘要

How specific features in the environment are represented within the brain is an important unanswered question in neuroscience. A subset of retinal neurons, called direction selective ganglion cells (DSGCs) are specialized for detecting motion along specific axes of the visual field. Despite extensive study of the retinal circuitry that endows DSGCs with their unique tuning properties,, their downstream circuitry in the brain and thus their contribution to visual processing has remained unclear. In mice, several different types of DSGCs connect to the dorsal lateral geniculate nucleus (dLGN),,, the visual thalamic structure that harbors cortical relay neurons. Whether direction selective information computed at the level of the retina is routed to cortical circuits and integrated with other visual channels, however, is unknown. Here we show using viral trans-synaptic circuit mapping, and functional imaging of visually-driven calcium signals in thalamocortical axons, that there is a di-synaptic circuit linking DSGCs with the superficial layers of primary visual cortex (V1). This circuit pools information from multiple types of DSGCs, converges in a specialized subdivision of the dLGN, and delivers direction-tuned and orientation-tuned signals to superficial V1. Notably, this circuit is anatomically segregated from the retino-geniculo-cortical pathway carrying non-direction-tuned visual information to deeper layers of V1, such as layer 4. Thus, the mouse harbors several functionally specialized, parallel retino-geniculo-cortical pathways, one of which originates with retinal DSGCs and delivers direction- and orientation-tuned information specifically to the superficial layers of primary visual cortex. These data provide evidence that direction and orientation selectivity of some V1 neurons may be influenced by the activation of DSGCs.
机译:如何在大脑中表示环境中的特定特征是神经科学中一个重要的未解决的问题。视网膜神经元的一个子集,称为方向选择性神经节细胞(DSGC),专门用于检测沿视野的特定轴的运动 。尽管对视网膜电路进行了广泛的研究,赋予DSGC独特的调节特性 ,但它们在大脑中的下游电路以及它们对视觉处理的贡献仍不清楚。在小鼠中,几种不同类型的DSGC连接到背侧膝状核(dLGN), 带有皮质中继神经元的视觉丘脑结构。然而,在视网膜水平上计算出的方向选择信息是否被路由到皮层回路并与其他视觉通道整合尚不清楚。在这里,我们显示了使用病毒跨突触回路映射 和丘脑皮质轴突中视觉驱动钙信号的功能成像,发现双突触回路将DSGC与主视觉皮层(V1)的表层。该电路汇集了来自多种类型DSGC的信息,汇聚到dLGN的专门细分中,并将方向调整和方向调整的信号传递到表面V1。值得注意的是,该回路在解剖学上与携带非方向调整的视觉信息的视黄醛-皮层-皮层通路隔离到V1的较深层(例如第4层)。因此,小鼠具有数个功能上专门的平行的视黄酸-皮层-皮层通路,其中之一起源于视网膜DSGC,并将方向和方向调整后的信息专门传递给初级视觉皮层的表层。这些数据提供了证据,表明某些V1神经元的方向和方向选择性可能受到DSGC激活的影响。

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